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Characterization of the Impact of Drug Metabolism on the Gas-Phase Structures of Drugs Using Ion Mobility-Mass Spectrometry

机译:使用离子迁移率质谱法对药物代谢对药物气相结构的影响

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Conventional strategies for drug metabolite identification employ a combination of liquid chromatography-mass spectrometry (LC-MS), which offers higher throughput but provides limited structural information, and nuclear magnetic resonance spectroscopy, which can achieves the most definitive identification but lacks throughput. Ion mobility-mass spectrometry (IM-MS) is a rapid, two-dimensional analysis that separates ions on the basis of their gas-phase size and shape (reflected by collision cross section, CCS) and their mass-to-charge (m/z) ratios. The rapid nature of IM separation combined with the structural information provided by CCS make IM-MS a promising technique for obtaining more structural information on drug metabolites without sacrificing analytical throughput. Here, we present an in vitro biosynthesis coupled with IM-MS strategy for rapid generation and analysis of drug metabolites. Drug metabolites were generated in vitro using pooled subcellular fractions derived from human liver and analyzed using a rapid flow injection-IM-MS method. We measured CCS values for 19 parent drugs and their 37 metabolites generated in vitro (78 values in total), representing a wide variety of metabolic modifications. Post-IM fragmentation and computational modeling were used to support metabolite identifications and explore the structural characteristics driving behaviors observed in IM separation. Overall, we found the effects of metabolic modifications on the gas-phase structures of the metabolites to be highly dependent upon the structural characteristics of the parent compounds and the specific position of the modification. This in vitro biosynthesis coupled with rapid IM-MS analysis workflow represents a promising platform for rapid and high-confidence identification of drug metabolites, applicable at a large scale.
机译:药物代谢物鉴定的常规策略采用液相色谱 - 质谱(LC-MS)的组合,其提供更高的吞吐量,但提供有限的结构信息和核磁共振光谱,可以实现最明确的识别但缺乏吞吐量。离子迁移率 - 质谱(IM-MS)是一种快速,二维分析,其基于它们的气相尺寸和形状(由碰撞横截面,CCS)和它们的质量充电(M)的形状分开离子(M) / z)比率。 CCS提供的IM分离的快速性质与CCS提供的结构信息相结合使IM-MS成为获得药物代谢物的更多结构信息的有希望的技术,而不会牺牲分析产量。在这里,我们提出了一种与IM-MS战略相结合的体外生物合成,用于快速产生和分析药物代谢物。使用来自人肝的合并亚细胞级分,并使用快速流动注射IM-MS法分析药物代谢物。我们测量了19个母种的CCS值及其体外产生的37种代谢物(总共78值),代表各种代谢修饰。后IM碎片和计算建模用于支持代谢物识别,并探索在IM分离中观察到的结构特征驾驶行为。总体而言,我们发现代谢修饰对代谢物的气相结构的影响高度依赖于母体化合物的结构特征和改性的特定位置。这种体外生物合成耦合与快速IM-MS分析工作流程表示有希望的平台,用于迅速和高频率识别药物代谢物,适用于大规模。

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